Center for Energy and Environment, School of Advanced Sciences, KLE Technological University, Vidyanagar, Hubballi 580031, Karnataka, India.
Department of Self-Development Skills, King Saud University, Riyadh 11451, Saudi Arabia.
ACS Appl Bio Mater. 2024 Feb 19;7(2):752-777. doi: 10.1021/acsabm.3c00983. Epub 2024 Jan 25.
Recent developments in nanoscale materials have found extensive use in various fields, especially in the biomedical industry. Several substantial obstacles must be overcome, particularly those related to nanostructured materials in biomedicine, before they can be used in therapeutic applications. Significant concerns in biomedicine include biological processes, adaptability, toxic effects, and nano-biointerfacial properties. Biomedical researchers have difficulty choosing suitable materials for drug carriers, cancer treatment, and antiviral uses. Carbon nanomaterials are among the various nanoparticle forms that are continually receiving interest for biomedical applications. They are suitable materials owing to their distinctive physical and chemical properties, such as electrical, high-temperature, mechanical, and optical diversification. An individualized, controlled, dependable, low-carcinogenic, target-specific drug delivery system can diagnose and treat infections in biomedical applications. The variety of carbon materials at the nanoscale is remarkable. Allotropes and other forms of the same element, carbon, are represented in nanoscale dimensions. These show promise for a wide range of applications. Carbon nanostructured materials with exceptional mechanical, electrical, and thermal properties include graphene and carbon nanotubes. They can potentially revolutionize industries, including electronics, energy, and medicine. Ongoing investigation and expansion efforts continue to unlock possibilities for these materials, making them a key player in shaping the future of advanced technology. Carbon nanostructured materials explore the potential positive effects of reducing the greenhouse effect. The current state of nanostructured materials in the biomedical sector is covered in this review, along with their synthesis techniques and potential uses.
近年来,纳米材料在各个领域得到了广泛的应用,尤其是在生物医学领域。在将其应用于治疗之前,必须克服一些重大障碍,特别是与生物医学中的纳米结构材料相关的障碍。生物医学中的重大问题包括生物过程、适应性、毒性作用和纳米生物界面特性。生物医学研究人员在选择适合药物载体、癌症治疗和抗病毒用途的材料时遇到困难。碳纳米材料是各种纳米颗粒形式中持续受到生物医学应用关注的一种。由于其独特的物理和化学性质,如电学、高温、机械和光学多样化,它们是合适的材料。生物医学应用中,能够实现个体化、可控、可靠、低致癌、靶向药物输送系统的诊断和治疗感染。纳米尺度的碳材料种类繁多。同素异形体和同一元素的其他形式,碳,在纳米尺度上都有代表。这些材料有望应用于广泛的领域。具有优异机械、电气和热性能的碳纳米结构材料包括石墨烯和碳纳米管。它们有可能彻底改变电子、能源和医学等行业。对这些材料的持续研究和扩展努力不断挖掘其可能性,使它们成为塑造先进技术未来的关键参与者。碳纳米结构材料探索了减少温室效应的潜在积极影响。本综述涵盖了生物医学领域中纳米结构材料的现状,以及它们的合成技术和潜在用途。
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